IB Chemistry HL Topic 6 — Electron Transfer Paper 1 & 2 Core idea ~10 min read

Electrolytic Cells

A voltaic cell lets a reaction that wants to happen do useful work on the way. An electrolytic cell does the opposite: it uses electricity to force a reaction that would never happen on its own. That is how we pull sodium out of salt and aluminium out of its ore.

📚 What you need to know

Electrolysing molten lead(II) bromide

This is the simplest possible case. There are only two ions present, so there is no competition and no ambiguity.

Electrolysis of molten lead(II) bromide The compound must be molten so the ions can move + Pb²⁺ Br⁻ ANODE (+) bromide ions lose electrons 2Br⁻ → Br₂ + 2e⁻ orange-brown bromine vapourCATHODE (−) lead ions gain electrons Pb²⁺ + 2e⁻ → Pb silvery lead collects belowmolten PbBr₂, heated stronglyMolten, not dissolved, so there is nothing to compete Metals form at the cathode, non-metals at the anode.
Solid lead(II) bromide will not conduct at all. The ions are locked in the lattice, and only melting sets them free to carry charge.
The word gives the game away. “Electrolysis” comes from the Greek for splitting by electricity, and that is exactly what you are watching: a stable compound being pulled apart into the elements it was made from.

Why the charges are the other way round

This is the single most confusing thing in the topic, and it becomes obvious once you ask what is pushing the electrons.

What never changes is the chemistry: oxidation happens at the anode and reduction at the cathode, in both types of cell.

Two kinds of cell, one shared rule Only the charges swap round VOLTAIC CELL chemical → electrical spontaneous anode is NEGATIVE cathode is POSITIVE two solutions, salt bridgeELECTROLYTIC CELL electrical → chemical forced by a power supply anode is POSITIVE cathode is NEGATIVE one liquid, no salt bridgeOxidation at the anode, reduction at the cathode, always It is the sign on the electrode that changes, not the chemistry.
A memory hook that works both ways round: an Anode is where Oxidation happens. Learn that pair and you never need the charges memorised.
Why it has to be molten or dissolved: in a solid ionic lattice the ions are fixed in place. They still have charge, but they cannot move, so no current can flow. Melting or dissolving breaks the lattice apart and lets them travel.

What electrolysis is used for

UseWhat is electrolysedWhy electrolysis is needed
Extracting aluminiumMolten aluminium oxide in cryoliteAluminium is too reactive to be displaced by carbon
Extracting sodiumMolten sodium chlorideNo cheaper reducing agent is strong enough
Purifying copperCopper(II) sulfate with copper electrodesGives the very high purity that electrical wiring needs
Making chlorine and sodium hydroxideConcentrated brineProduces three useful products from cheap salt water

Worked examples

WORKED EXAMPLE

Molten aluminium oxide is electrolysed. Give the electrode half-equations and the overall equation.

Step 1: Identify the ions Al3+ and O2−. Cations go to the cathode, anions to the anode. Step 2: Cathode, reduction Al3+(l) + 3e → Al(l) Step 3: Anode, oxidation 2O2−(l) → O2(g) + 4e Step 4: Scale to 12 electrons and add 2Al2O3(l) → 4Al(l) + 3O2(g) the carbon anodes burn away in the oxygen, which is why they need replacing
WORKED EXAMPLE

Explain why solid sodium chloride does not conduct electricity but molten sodium chloride does.

Step 1: Say what carries the charge In an ionic compound the charge carriers are the ions themselves. Step 2: Describe the solid The ions are held in fixed positions in the lattice by strong electrostatic attraction, so they cannot move. Step 3: Describe the liquid Melting overcomes those attractions, freeing the ions to move towards the electrodes. Only the molten form has mobile ions, so only it conducts “mobile ions” is the phrase that earns the mark
WORKED EXAMPLE

Molten magnesium chloride is electrolysed. Predict the products at each electrode and state the electrode charges.

Step 1: List the ions Mg2+ and Cl. There is no water, so no competition. Step 2: Positive ions go to the negative electrode Cathode (−): Mg2+(l) + 2e → Mg(l) Step 3: Negative ions go to the positive electrode Anode (+): 2Cl(l) → Cl2(g) + 2e Magnesium metal at the negative cathode, chlorine gas at the positive anode molten binary salt: metal one end, non-metal the other, every time

💡 Exam tip

⚠ Common mix-up

Up next: Oxidation of Alcohols — the topic turns to organic chemistry now, but the idea is identical. Something loses electrons, something else gains them, and the oxidation numbers tell you which.

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